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Updated: Mar 24, 2026

Spatiotemporal Control of Protein Activity through Optogenetic Allosteric Regulation
Published on: October 4, 2024
Allosteric switch regulates protein-protein binding through collective motion
Colin A Smith1, David Ban2, Supriya Pratihar3
1Department for Theoretical and Computational Biophysics, Max Planck Institute for Biophysical Chemistry, 37077 Goettingen, Germany; Department for NMR-Based Structural Biology, Max Planck Institute for Biophysical Chemistry, 37077 Goettingen, Germany; colin.smith@mpibpc.mpg.de cigr@nmr.mpibpc.mpg.de donghan.lee@louisville.edu bgroot@gwdg.de.
Abstract:
Many biological processes depend on allosteric communication between different parts of a protein, but the role of internal protein motion in propagating signals through the structure remains largely unknown. Through an experimental and computational analysis of the ground state dynamics in ubiquitin, we identify a collective global motion that is specifically linked to a conformational switch distant from the binding interface. This allosteric coupling is also present in crystal structures and is found to facilitate multispecificity, particularly binding to the ubiquitin-specific protease (USP) family of deubiquitinases. The collective motion that enables this allosteric communication does not affect binding through localized changes but, instead, depends on expansion and contraction of the entire protein domain. The characterization of these collective motions represents a promising avenue for finding and manipulating allosteric networks.
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